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Mechanical loading of tissue engineered skeletal muscle prevents dexamethasone induced myotube atrophy

Kathryn W. Aguilar-Agon; Andrew J. Capel; Jacob W. Fleming; Darren J. Player; Neil R. W. Martin; Mark P. Lewis
Journal of Muscle Research and Cell Motility · Vol. 42, Issue 2 · pp. 149-159 · 2021

Abstract

Skeletal muscle atrophy as a consequence of acute and chronic illness, immobilisation, muscular dystrophies and aging, leads to severe muscle weakness, inactivity and increased mortality. Mechanical loading is thought to be the primary driver for skeletal muscle hypertrophy, however the extent to which mechanical loading can offset muscle catabolism has not been thoroughly explored. In vitro 3D-models of skeletal muscle provide a controllable, high throughput environment and mitigating many of the ethical and methodological constraints present during in vivo experimentation. This work aimed to determine if mechanical loading would offset dexamethasone (DEX) induced skeletal muscle atrophy, in muscle engineered using the C2C12 murine cell line. Mechanical loading successfully offset myotube atrophy and functional degeneration associated with DEX regardless of whether the loading occurred before or after 24 h of DEX treatment. Furthermore, mechanical load prevented increases in MuRF-1 and MAFbx mRNA expression, critical regulators of muscle atrophy. Overall, we demonstrate the application of tissue engineered muscle to study skeletal muscle health and disease, offering great potential for future use to better understand treatment modalities for skeletal muscle atrophy.

Bibliographic Information

JournalJournal of Muscle Research and Cell Motility
PublisherSpringer
Publication Date2021-06-01
Publication Year2021
Volume42
Issue2
Pages149-159
Document TypeJournal Article
Print ISSN0142-4319
eISSN1573-2657
DOI10.1007/s10974-020-09589-0

Access Information

NARA Access Coverage1980-01-01~Current
Journal Homepagehttps://www.springer.com/journal/10974
Publisher PageOpen Publisher Page
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